Multifidelity Algorithm for the Sensitivity Analysis of Multidisciplinary Problems

Author:

Drouet Vincent1,Balesdent Mathieu2,Brevault Loïc2,Dubreuil Sylvain1,Morio Jérôme1

Affiliation:

1. Université de Toulouse ONERA DTIS, , F-31055 Toulouse , France

2. Université Paris Saclay ONERA DTIS, , F-91123 Palaiseau Cedex , France

Abstract

AbstractThe present article proposes an algorithm for the sensitivity analysis of a multidisciplinary problem, in which the derivative-based global sensitivity indices are computed with multifidelity Gaussian process models. Two levels of fidelity are used to estimate the indices, where the low-fidelity samples are obtained by stopping the multidisciplinary analysis solver before convergence. A dedicated refinement strategy for the multifidelity Gaussian process is proposed to ensure the accuracy of the sensitivity index estimation. This algorithm is tested on three multidisciplinary problems of increasing complexity (one analytical and two representative engineering design problems), and proved to be both reliable in detecting the noninfluential variables and computationally efficient, compared to classical Monte Carlo integration and to three other candidate algorithms.

Publisher

ASME International

Subject

Computer Graphics and Computer-Aided Design,Computer Science Applications,Mechanical Engineering,Mechanics of Materials

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